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Development and implementation of contactless methods for determining the stress-strain state of pipelines in the process of transportation of energy hydrocarbons is important for ensuring its safe operation. The authors developed a method for determining the change in the stress-strain state of the underground part of the main oil and gas pipelines according to the data about the displacement of a certain set of points of the axis of the pipeline. This study was conducted on a linear section of the main gas pipeline, where a landslide in 2010 created a force pressure on the pipeline, resulting in a pipeline rupture.
Rocznik
Tom
Strony
17--32
Opis fizyczny
Bibliogr. 29 poz.
Twórcy
autor
- Faculty Mechanical of Engineering, Lublin University of Technology, Nadbystrzycka 36 Street, 20-618 Lublin
autor
- Ternopil Ivan Puluj National Technical University, Ruska Street 56, 46001 Ternopil, Ukraine
autor
- Ivano-Frankivsk National Technical University of Oil and Gas, Ivano-Frankivsk, Ukraine
autor
- Ivano-Frankivsk National Technical University of Oil and Gas, Ivano-Frankivsk, Ukraine
Bibliografia
- 1. Bonvicini Sarah, Giacomo Antonioni, Pamela Morra, Valerio Cozzani. 2015. „Quantitative assessment of environmental risk due to accidental spills from onshore pipelines”. Process Safety and Environmental Protection 93: 1-49.
- 2. Dmytriv Vasyl, Ihor Dmytriv, Ivan Horodetskyy, Taras Dmytriv. 2019. „Analytical dynamic model of coefficient of friction of air pipeline under pressure”. Diagnostyka 20(4): 89-94.
- 3. Gas pipeline incidents. 2018. „10th Report of the European Gas Pipeline Incident Data Group”. March (1970-2016): 50.
- 4. Guo Yan-Bao, Liu Cheng, Wang De-Guo, Liu Shu-Hai. 2015. „Effects of alternating current interference on corrosion of X60 pipeline steel”. Petroleum Science 12(2): 316-324.
- 5. Heidary Roohollah, Steven A. Gabriel, Mohammad Modarres, Katrina M. Groth, Nader Vahdati. 2018. „A review of data-driven oil and gas pipeline pitting corrosion growth models applicable for prognostic and health management”. Int. J. Progn. Health Manage 9(1): 1-13.
- 6. Hewko B.M., P.V. Popovich, A.Y. Diachun, O.L. Lyashuk, R.O. Liubachivskyi. 2015. „The study of bulk material kinematics in a screw conveyor-mixer”. INMATEH Agricultural Engineering 47(3): 156-163. Bucharest-Romania.
- 7. Kosicka E., E. Kozłowski, D. Mazurkiewicz. 2015. „The use of stationary tests for analysis of monitored residual processes”. Eksploatacja i Niezawodnosc – Maintenance and Reliability 17(4): 604-609. DOI: http://dx.doi.org/10.17531/ein.2015.4.17.
- 8. Lytvynenko Iaroslav, Pavlo Maruschak, Serhii Lupenko, Pavlo Popovych. 2016. „Modeling of the Ordered Surface Topography of Statically Deformed Aluminum Alloy”. Mater Sci 52: 113-122. DOI: https://doi.org/10.1007/s11003-016-9933-1.
- 9. Mansoori Hamed, Reza Mirzaee, Feridun Esmaeilzadeh, Arash Vojood, Alireza Soltan Dowranide. 2017. „Pitting corrosion failure analysis of a wet gas pipeline”. Engineering Failure Analysis 82: 16-25.
- 10. Marchuk Gury Ivanovich. 1984. Numerical methematics procedures. Nauka: 608. Moscow.
- 11. Maruschak Pavlo, Iryna Danyliuk, Olegas Prentkovskis, Roman Bishchak, Andriy Pylypenko, Andriy Sorochak. 2014. „Degradation of the main gas pipeline material and mechanisms of its fracture”. Journal of Civil Engineering and Management 20(6): 864-872. DOI: https://doi.org/10.3846/13923730.2014.971128. 12. Maruschak Pavlo, Sergey Panin, Iryna Danyliuk, Lyubomyr Poberezhnyi, Taras Pyrig, Roman Bishchak, Ilya Vlasov. 2015. „Structural and mechanical defects of materials of offshore and onshore main gas pipelines after long-term operation”. Open Engineering 5(1). ISSN: 2391-5439. DOI: https://doi.org/10.1515/eng-2015-0045.
- 13. Maruschak Pavlo, Sergey Panin, Ilya Vlasov, Olegas Prentkovskis, Iryna Danyliuk. 2015. „Structural levels of the nucleation and growth of fatigue crack in 17Mn1Si steel pipeline after long-term service”. Transport 30(1): 15-23.
- 14. Michalski R., S. Wierzbicki. 2008. „An analysis of degradation of vehicles in operation”. Eksploatacja i Niezawodnosc – Maintenance and Reliability 1: 30-32.
- 15. Nikolic Ruzica, Dusan Arsic, Aleksandra Arsic, Zivce Sarkocevic, Dragan Cvetkovic, Branislav Hadzima. 2020. „The The Fault Tree Analysis of Causes of the Welded Pipes Failures in Exploitationon”. Communications – Scientific Letters of the University of Zilina (Komunikacie) 20(1): 62-70.
- 16. Oleksijovych Kychma Andriy, Rostuslav Yaroslavovych Predko. 2019. „Estimation of residual stresses for multi-layer circumferential welds of oil and gas pipelines”. Diagnostyka 20(4): 11-18.
- 17. Oliinyk Andriy. 2010. Matematychni modeli protsesu kvazistatsionarnoho deformuvannia truboprovidnykh ta promyslovykh system pry zmini yikh prostorovoi konfihuratsii. [In Russian: Mathematical models for the process of quasi-stationary deformation of pipeline and field systems in the context of their spacious configuration]. Scientific publication. Ivano-Frankivsk: IFNTUNH: 320.
- 18. Oliinyk A., V.Y. Bash. 1984. Stress and deformation analysis by thermoelectric technique. Naukova dumka: 100. Kyiv.
- 19. Oliynyk Andriy. 2010. Mathematical models for process of quasy-stationary deformation of pipline and industrial systems under their spatial configuration change. Scientific publication. Ivano-Frankivsk: IFNTUOG: 320.
- 20. Proskuriakov N.E., I.V. Lopa. 2017. „The monitoring of pipeline strength in dynamic loading”. In: AIP Conference Proceedings 1876(1): 020095. AIP Publishing LLC.
- 21. Samarsky A.A. 1989. „Numerical procedures: College-level study guide”. Samarsky A.A., Gulin A.V. Nauka. MEO of physical and mathematical literature: 432 p. Moscov.
- 22. Sedov L.I. 2018. Similarity and dimensional methods in mechanics. CRC press 496.
- 23. Shan Ke, Shuai Jian. 2017. „Statistical Analyses of incidents on oil and gas pipelines based on comparing different pipeline incident databases”. In: ASME 2017 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers Digital Collection. DOI: https://doi.org/10.1115/PVP2017-65289.
- 24. Timashev Sviatoslav, Anna Bushinskaya. 2016. Diagnostics and reliability of pipeline systems. Springer International Publishing. Switzerland.
- 25. Yavorskyi Andrii Viktorovich, Maksym Karpash, Liubomyr Zhovtulia, Lyubomyr Poberezhny. 2017. „Safe operation of engineering structures in the oil and gas industry”. Journal of Natural Gas Science and Engineering October 46: 289-295.
- 26. Yavorskyi Andrii Viktorovich, Maksym Karpash, Liubomyr Zhovtulia, Lyubomyr Poberezhny. 2016. „Risk management of a safe operation of engineering structures in the oil and gas sector”. 20th International Conference “Transport Means 2016”: 370-373.
- 27. Yu Mengsha, Weixing Chen, Richard Kania, Greg Van Boven, Jenny Been. 2016. „Crack propagation of pipeline steel exposed to a near-neutral pH environment under variable pressure fluctuations”. International Journal of Fatigue 82: 658-666.
- 28. Zhonggang Z., Y. Anlin, Z. Xuefen. 2005. „Research progress in acceptability risk assessment of oil & gas pipeline”. Technology Supervision in Petroleum Industry 5.
- 29. Zolochevsky V.A. 1983. Experiments in development mechanic. 192 p. Moscov - Stryizdat.
Typ dokumentu
Bibliografia
Identyfikator YADDA
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